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Atlas-based segmentation of brain magnetic resonance imaging using random walks

机译:基于Atlas的随机行走脑磁共振成像分割

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The segmentation of brain magnetic resonance imaging is a difficult task, essential to several applications in neuroscience. Atlas-based methods are often employed for this task since they provide prior information in the form of labels, without the manual intervention of a trained technician. In this paper, we present a novel and efficient atlas-based segmentation method based on random walks. Unlike most atlas-based approaches, our method combines the registration and label propagation steps in a single efficient framework. Moreover, this method does not depend on a specific deformation model, making it more robust to complex transformations not captured by such models. Experiments on benchmark brain MRI data show the usefulness and efficiency of our method.
机译:脑磁共振成像的分割是一项艰巨的任务,对于神经科学中的多种应用至关重要。基于地图集的方法通常用于此任务,因为它们以标签的形式提供先验信息,而无需受过训练的技术人员的手动干预。在本文中,我们提出了一种基于随机游走的新颖有效的基于图集的分割方法。与大多数基于图集的方法不同,我们的方法将注册和标签传播步骤组合在一个有效的框架中。此外,此方法不依赖于特定的变形模型,从而使其对于此类模型未捕获的复杂转换更加鲁棒。在基准脑MRI数据上进行的实验证明了我们方法的有效性和有效性。

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